30

Any ideas as to how might apply TypeScript's Partial mapped type to an interface recursively, at the same time not breaking any keys with array return types?

The following approaches have not been sufficing:

interface User {  
  emailAddress: string;  
  verification: {
    verified: boolean;
    verificationCode: string;
  }
  activeApps: string[];
}

type PartialUser = Partial<User>; // does not affect properties of verification  

type PartialUser2 = DeepPartial<User>; // breaks activeApps' array return type;

export type DeepPartial<T> = {
  [ P in keyof T ]?: DeepPartial<T[ P ]>;
}

Any ideas?

UPDATE: Accepted answer - A better and more general solve for now.

Had found a temporary workaround which involves intersection of types and two mapped types as follows. The most notable drawback is that you have to supply the property overrides to restore sullied keys, the ones with array return types.

E.g.

type PartialDeep<T> = {
  [ P in keyof T ]?: PartialDeep<T[ P ]>;
}
type PartialRestoreArrays<K> = {
  [ P in keyof K ]?: K[ P ];
}

export type DeepPartial<T, K> = PartialDeep<T> & PartialRestoreArrays<K>;

interface User {  
 emailAddress: string;  
 verification: {
   verified: boolean;
   verificationCode: string;
 }
 activeApps: string[];
}

export type AddDetailsPartialed = DeepPartial<User, {
 activeApps?: string[];
}>

Like so

  • Looks like you need mapped conditional types which are not yet part of TypeScript 🙁. If you want that fleshed out as an answer, let me know. – jcalz Jul 28 '17 at 14:45
  • understood. what would you suggest as a solution for now? – Allan Simoyi Jul 28 '17 at 14:51
  • The most straightfoward answer is to just manually declare a DeepPartialUser interface with what you want (a.k.a., give up). Or, you could do something like interface DeepPartialUser extends DeepPartial<User> { activeApps?: string[]; } which protects the particular array that broke while leaving the rest alone. – jcalz Jul 28 '17 at 15:00
  • giving up entails maintaining two untethered data model elements, with no way of knowing how they are related. i would rather retrieve a partialed model from the base model, ensuring a sort of single source of truth for derived interfaces – Allan Simoyi Jul 28 '17 at 15:11
  • found a hacky workaround based on your suggestion as shown in the updated question, what do you think of it. surely can be improved upon, no? – Allan Simoyi Jul 28 '17 at 15:13
11

UPDATE 2018-06-22:

This answer was written a year ago, before the amazing conditional types feature was released in TypeScript 2.8. So this answer is no longer needed. Please see @krzysztof-kaczor's new answer below for the way to get this behavior in TypeScript 2.8 and up.


Okay, here is my best attempt at a crazy but fully general solution (requiring TypeScript 2.4 and up) which might not worth it to you, but if you want to use it, be my guest:

First, we need some type-level boolean logic:

type False = '0'
type True = '1'
type Bool = False | True
type IfElse<Cond extends Bool, Then, Else> = {'0': Else; '1': Then;}[Cond];

All you need to know here is that the type IfElse<True,A,B> evaluates to A and IfElse<False,A,B> evaluates to B.

Now we define a record type Rec<K,V,X>, an object with key K and value type V, where Rec<K,V,True> means the property is required, and Rec<K,V,False> means the property is optional:

type Rec<K extends string, V, Required extends Bool> = IfElse<Required, Record<K, V>, Partial<Record<K, V>>>

At this point we can get to your User and DeepPartialUser types. Let's describe a general UserSchema<R> where every property we care about is either required or optional, depending on whether R is True or False:

type UserSchema<R extends Bool> =
  Rec<'emailAddress', string, R> &
  Rec<'verification', (
    Rec<'verified', boolean, R> &
    Rec<'verificationCode', string, R>
  ), R> &
  Rec<'activeApps', string[], R>

Ugly, right? But we can finally describe both User and DeepPartialUser as:

interface User extends UserSchema<True> { } // required
interface DeepPartialUser extends UserSchema<False> { }  // optional

And see it in action:

var user: User = {
  emailAddress: 'foo@example.com',
  verification: {
    verified: true,
    verificationCode: 'shazam'
  },
  activeApps: ['netflix','facebook','angrybirds']
} // any missing properties or extra will cause an error

var deepPartialUser: DeepPartialUser = {
  emailAddress: 'bar@example.com',
  verification: {
    verified: false
  }
} // missing properties are fine, extra will still error

There you go. Hope that helps!

|improve this answer|||||
  • You are right, crazy, but fully general and definitely worth it. I do hope typescript adds mapped conditional types asap. – Allan Simoyi Jul 29 '17 at 5:43
71

With TS 2.8 and conditional types we can simply write:

type DeepPartial<T> = {
  [P in keyof T]?: T[P] extends Array<infer U>
    ? Array<DeepPartial<U>>
    : T[P] extends ReadonlyArray<infer U>
      ? ReadonlyArray<DeepPartial<U>>
      : DeepPartial<T[P]>
};

You might want to checkout https://github.com/krzkaczor/ts-essentials package for this and some other useful types.

|improve this answer|||||
  • 3
    Do we not also need a extends object condition so that primitives aren't themself mapped? – Aaron Beall May 23 '18 at 2:30
  • 1
    I've found out that if we try to get a partial of types written in a *.d.ts file, this solution fails. Instead of the specific type, it gets mapped into a DeepPartial of any (it becomes DeepPartial<any> | DeepPartial<{}>[] | ReadonlyArray<DeepPartial<{}>>). However, if I put the same declarations inside a *.ts file, it gets typed correctly. – Suhair Zain Jun 27 '18 at 5:18
  • 20
    That's a funny use of "simply"! :D – DanielM Oct 13 '18 at 17:08
  • 1
    Similar to the comment by @SuhairZain, if you are using an index type whose value is any this will also break. I.e., { [key: string]: any }. – icfantv Dec 13 '18 at 23:18
  • 1
    Fix to make this work with any types: type DeepPartial<T> = T extends object ? { [K in keyof T]?: DeepPartial<T[K]> } : T;. github.com/Microsoft/TypeScript/issues/30082 – Oliver Joseph Ash Feb 25 '19 at 16:34
0

You can use ts-toolbelt, it can do operations on types at any depth

In your case, it would be:

import {O} from 'ts-toolbelt'

interface User {  
    emailAddress: string;  
    verification: {
      verified: boolean;
      verificationCode: string;
    }
    activeApps: string[];
}

type optional = O.Optional<User, keyof User, 'deep'>

And if you want to compute it deeply (for display purposes), you can use Compute for that

|improve this answer|||||

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